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首页> 外文期刊>Materials express: an international journal on multidisciplinary materials research >Augmenting thermal and mechanical properties of epoxy thermosets: The role of thermally-treated versus surface-modified TiO2 nanoparticles
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Augmenting thermal and mechanical properties of epoxy thermosets: The role of thermally-treated versus surface-modified TiO2 nanoparticles

机译:增强环氧树脂热固性材料的热和机械性能:热处理与表面改性的TiO2纳米颗粒的作用

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摘要

Inorganic particulate reinforcements for organic epoxy resins and polymers attracted intense exploratory research in recent years to better the performance of existing composite materials and to devise new compositions of high performing materials. This work is aimed at investigating the role of crystalline and functional TiO2 nanoparticles in enhancing thermal and mechanical properties of epoxy thermosets. For this purpose, TiO2 nanoparticles are prepared and subjected to different processes, i.e., either thermal or surface chemical treatment, to obtain crystalline or functional TiO2 reinforcements differing in particle size, morphology, crys-tallinity, and surface chemistry. These TiO2 nanoparticles are subsequently embedded into epoxy matrix to form crystalline TiO2/epoxy (CTEN) or functional TiO2/epoxy (FTEN) nanocornposites with 2.5-12.5 wt.% TiO2. Thus obtained nanocomposite are characterized by FTIR, SEM, DSC, TG, and static mechanical analyses. It is found that FTEN composites possess greater tensile strength (>49%), fracture strength (>64%), modulus (>80%), toughness (>35%), and T_g (>48%) as compared to the reference epoxy polymer. CTEN composites, on the other hand, possess greater thermal stability. It is revealed that thermal decomposition temperature as well as final residual weight of CTEN composites are substantially increased by the presence of crystalline TiO2 nanoparticles. The optimum ratio of crystalline TiO2 nanoparticles for CTEN composites is found to be <5 wt.%, whereas the ratio of functional TiO2 nanoparticles for FTEN composites is < 10.0 wt%, thus offering better performance of FTEN composites through appropriate processing of the inorganic reinforcements.
机译:近年来,用于有机环氧树脂和聚合物的无机颗粒增强剂吸引了广泛的探索性研究,以改善现有复合材料的性能并设计出高性能材料的新组成。这项工作旨在研究晶体和功能性TiO2纳米颗粒在增强环氧热固性树脂的热和机械性能中的作用。为此目的,制备TiO 2纳米颗粒,并对其进行不同的处理,即热处理或表面化学处理,以获得粒径,形态,结晶度和表面化学不同的结晶或功能性TiO 2增强剂。随后将这些TiO2纳米粒子嵌入环氧基质中,以形成结晶TiO2 /环氧树脂(CTEN)或功能性TiO2 /环氧树脂(FTEN)的纳米TiO2与2.5-12.5 wt%的TiO2。如此获得的纳米复合材料通过FTIR,SEM,DSC,TG和静态力学分析进行表征。发现与参考相比,FTEN复合材料具有更大的拉伸强度(> 49%),断裂强度(> 64%),模量(> 80%),韧性(> 35%)和T_g(> 48%)。环氧聚合物。另一方面,CTEN复合材料具有更高的热稳定性。揭示了由于结晶TiO 2纳米颗粒的存在,CTEN复合材料的热分解温度以及最终残余重量显着增加。发现CTEN复合材料的最佳结晶TiO2纳米颗粒比例<5 wt。%,而FTEN复合材料的功能性TiO2纳米颗粒比例<10.0 wt%,因此通过适当处理无机增强材料可以提供更好的FTEN复合材料性能。

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